Solid-phase synthesis of arginine-containing peptides and fluorogenic substrates using a side-chain anchoring approach

被引:15
作者
Hamzé, A
Martinez, J
Hernandez, JF
机构
[1] Univ Montpellier I, CNRS, UMR 5810, Lab Aminoacides Peptides & Prot,Fac Pharm, F-34093 Montpellier 5, France
[2] Univ Montpellier 2, CNRS, UMR 5810, Lab Aminoacides Peptides & Prot,Fac Pharm, F-34093 Montpellier 5, France
关键词
D O I
10.1021/jo048792t
中图分类号
O62 [有机化学];
学科分类号
070303 [有机化学]; 081704 [应用化学];
摘要
Attachment of an amino acid to a solid support by its side chain is sometimes necessary to take advantage of an a-carboxylic group available for diverse modifications, including the incorporation of a fluorophore for the preparation of fluorogenic substrates. In contrast to most other amino acids, anchoring the guanidinium group of an arginine to a resin requires the use of a supplementary linker. To avoid the usually multistep synthesis of such a linker as well as its difficult attachment to the guanidine group, we developed a simple method where the guanidine group is built on a Rink amide resin. Our strategy followed the steps of guanidine formation: (i) addition of an isothiocyanate derivative of ornithine to the amino group of a solid support, yielding Nomega-linked thiocitrulline; (ii) S-methylation of thiourea; (iii) guanidinylation using ammonium acetate. Cleavage of the resin generated the arginine-containing compound, the amine group of the resin becoming part of the guanidine. We have demonstrated the usefulness of this method by the synthesis of a series of fluorogenic substrates for trypsin-like serine proteases, which were obtained in high yield and purity. Then, our strategy also allowed generation from the same precursor differentially substituted arginine derivatives, including Nomega-methyl- and Nomega-ethylarginines. The ability to prepare such analogues together with the intermediates thiocitrulline and S-methylisothiocitrulline from a unique precursor while the a-amine and carboxylic groups remain available for modification also makes this method a powerful tool for combinatorial solid-phase synthesis of NO synthase inhibitors.
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收藏
页码:8394 / 8402
页数:9
相关论文
共 82 条
[1]
ALBERICIO F, 1990, INT J PEPT PROT RES, V35, P284
[2]
ALBERICIO F, 1990, PEPT PROTEIN RES, V35, P284
[3]
Active carbonate resins for solid-phase synthesis through the anchoring of a hydroxyl function. Synthesis of cyclic and alcohol peptides [J].
Alsina, J ;
Chiva, C ;
Ortiz, M ;
Rabanal, F ;
Giralt, E ;
Albericio, F .
TETRAHEDRON LETTERS, 1997, 38 (05) :883-886
[4]
Synthesis of positional-scanning libraries of fluorogenic peptide substrates to define the extended substrate specificity of plasmin and thrombin [J].
Backes, BJ ;
Harris, JL ;
Leonetti, F ;
Craik, CS ;
Ellman, JA .
NATURE BIOTECHNOLOGY, 2000, 18 (02) :187-193
[5]
Synthesis of protected guanidinium linked dinucleoside incorporable into an oligonucleotide using solid phase DNA methodology [J].
Barawkar, DA ;
Linkletter, B ;
Bruice, TC .
BIOORGANIC & MEDICINAL CHEMISTRY LETTERS, 1998, 8 (12) :1517-1520
[6]
Bernhardt A, 1997, J PEPT RES, V50, P143
[7]
BESSON T, 1992, HETEROCYCLES, V34, P273
[8]
Modular three-component solid-phase synthesis of unsymmetrical guanidines via resin capture of carbodiimides [J].
Boguszewski, PA ;
Rahman, SS ;
Ganesan, A .
JOURNAL OF COMBINATORIAL CHEMISTRY, 2004, 6 (01) :32-34
[9]
The solid phase synthesis of a guanidinium based 'tweezer' receptor [J].
Bonnat, M ;
Bradley, M ;
Kilburn, JD .
TETRAHEDRON LETTERS, 1996, 37 (30) :5409-5412
[10]
BREIPOHL G, 1990, INT J PEPT PROT RES, V35, P281